College of Veterinary Medicine, Hebei Agricultural University, Baoding, Hebei 071000, People's Republic of China.
Baoding Institute for Food and Drug Control, Baoding, Hebei 071000, People's Republic of China.
Poult Sci. 2024 Jul;103(7):103776. doi: 10.1016/j.psj.2024.103776. Epub 2024 Apr 16.
Chicoric acid (CA) is a natural nutrient found in plants, showcasing diverse biological activities, including anti-inflammatory and antioxidant properties. Despite its valuable properties, CA faces limitations in bioavailability and susceptibility to oxidative breakdown during utilization. Previous research introduced synthesized dihydrocaffeic acid grafted chitosan self-assembled nanomicelles (DA-g-CS), demonstrating its potential to enhance CA absorption. This study aims to investigate the pharmacokinetics, tissue distribution, and antioxidant activity of both CA and DA-g-CS loaded CA (DA-g-CS/CA) in broilers. An IPEC-J2 cell model was established and evaluated to delve deeper into the transport mechanism and antioxidant potential. The in vivo pharmacokinetic analysis in broilers highlighted a substantial difference: the maximum plasma concentration (Cmax) of DA-g-CS/CA exceeded CA by 2.6-fold, yielding a notable increased relative bioavailability to 214%. This evidence underscores the significant enhancement in CA's oral absorption, facilitated by DA-g-CS. The collective evaluation outcomes affirm the successful development of the cell model, indicating its suitability for drug transporter experiments. The findings from the intestinal transit analysis revealed that both CA and DA-g-CS/CA underwent passive entry into IPEC-J2 cells. Notably, the cellular uptake rate of DA-g-CS loaded with CA was significantly amplified, reaching 2.1 times higher than that of CA alone. Intracellular transport mechanisms involved microtubules, lysosomes, and the endoplasmic reticulum, with an additional pathway involving the endoplasmic reticulum observed specifically for DA-g-CS/CA, distinguishing it from CA. Moreover, the results from both in vivo and in vitro antioxidant assessments highlight the potent antioxidant activity of DA-g-CS/CA, showcasing its efficacy in preventing and treating cellular damage induced by oxidative stress. In summary, these findings underscore the significant enhancement of CA's efficacy facilitated by DA-g-CS, establishing a robust theoretical foundation for the prospective application of CA within livestock and poultry farming.
菊苣酸(CA)是一种天然存在于植物中的营养物质,具有多种生物活性,包括抗炎和抗氧化特性。尽管 CA 具有宝贵的特性,但在利用过程中存在生物利用度有限和易氧化分解的问题。之前的研究引入了合成的二氢咖啡酸接枝壳聚糖自组装纳米胶束(DA-g-CS),证明其具有提高 CA 吸收的潜力。本研究旨在研究 CA 和负载 CA 的 DA-g-CS(DA-g-CS/CA)在肉鸡中的药代动力学、组织分布和抗氧化活性。建立并评估了 IPEC-J2 细胞模型,以深入研究其转运机制和抗氧化潜力。肉鸡体内药代动力学分析表明,DA-g-CS/CA 的最大血浆浓度(Cmax)是 CA 的 2.6 倍,相对生物利用度显著增加到 214%。这一证据突出了 DA-g-CS 对 CA 口服吸收的显著增强。对肠道转运分析的综合评估结果证实了细胞模型的成功开发,表明其适合进行药物转运体实验。结果表明,CA 和 DA-g-CS/CA 均通过被动进入 IPEC-J2 细胞。值得注意的是,DA-g-CS 负载 CA 的细胞摄取率显著提高,达到 CA 单独的 2.1 倍。细胞内转运机制涉及微管、溶酶体和内质网,DA-g-CS/CA 还涉及内质网的另外一条途径,与 CA 不同。此外,体内和体外抗氧化评估的结果均突出了 DA-g-CS/CA 的强大抗氧化活性,展示了其预防和治疗氧化应激引起的细胞损伤的功效。总之,这些发现突出了 DA-g-CS 对 CA 疗效的显著增强,为 CA 在畜牧业中的应用提供了坚实的理论基础。